Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD and first preliminary results of the aerosol measurements campaign.

Slides:



Advertisements
Similar presentations
GEMS-Aerosol WP_AER_4: Evaluation of the model and analysis Lead Partners: NUIG & CNRS-LOA Partners: DWD, RMIB, MPI-M, CEA- IPSL-LSCE,ECMWF, DLR (at no.
Advertisements

Using a Radiative Transfer Model in Conjunction with UV-MFRSR Irradiance Data for Studying Aerosols in El Paso-Juarez Airshed by Richard Medina Calderón.
An Assessment of the UV Broad Band Filter Radiometer Measurement Accuracy A. Los 1 and J. Gröbner 2 1)Kipp & Zonen, Delft (The Netherlands) 2)JRC, Ispra.
THE OPTICAL PROPERTIES OF ATMOSPHERE DURING NATURAL FIRE EXPERIMENT IN CENTRAL RUSSIA AND THEIR IMPACT ON UV IRRADIANCE Nataly Ye. Chubarova Moscow State.
GEOS-5 Simulations of Aerosol Index and Aerosol Absorption Optical Depth with Comparison to OMI retrievals. V. Buchard, A. da Silva, P. Colarco, R. Spurr.
Ben Kravitz Tuesday, November 10, 2009 AERONET. What is AERONET? AErosol RObotic NETwork Worldwide collection of sun photometers.
Ultrafine Particles and Climate Change Peter J. Adams HDGC Seminar November 5, 2003.
. COMPARISON OF BREWER AND DOBSON TOTAL OZONE Brewer and Dobson spectrophotometers are widely used for Total Ozone monitoring. In Arosa (Switzerland, 46.8N/9.68E.
To compute the solar radiation flux density at the surface we need to know effects of atmosphere in filtering and depleting the beam from the top of the.
Assimilation of Aerosol Optical Depth Gé Verver 1, Bas Henzing 1, Peter van Velthoven 1 Cristina Robles-Gonzalez 2, Gerrit de Leeuw 2 1 KNMI, De Bilt,
An Introduction to Using Angular Information in Aerosol Remote Sensing Richard Kleidman SSAI/NASA Goddard Lorraine Remer UMBC / JCET Robert C. Levy NASA.
Three stories about aerosols Marin Simić, 4.G Gimnazija “Matija Mesić” Slav. Brod C r o a t i a 24 th September 2012.
1 Satellite Remote Sensing of Particulate Matter Air Quality ARSET Applied Remote Sensing Education and Training A project of NASA Applied Sciences Pawan.
1 Satellite Remote Sensing of Particulate Matter Air Quality ARSET Applied Remote Sensing Education and Training A project of NASA Applied Sciences Pawan.
Assessing Air Quality Using USDA Shadow-band Radiometers James Slusser USDA UV-B Monitoring and Research Program Natural Resource Ecology Laboratory Colorado.
TOTAL OZONE MONITORING BY GROUNDBASED INSTRUMENTS AS PART OF GAW J. Staehelin 1, R.Stübi 2, U. Köhler 3 and A Redondas 4 1 Institute for Atmospheric and.
(Impacts are Felt on Scales from Local to Global) Aerosols Link Climate, Air Quality, and Health: Dirtier Air and a Dimmer Sun Emissions Impacts == 
Characterization of Aerosol Physical, Optical and Chemical Properties During the Big Bend Regional Aerosol and Visibility Observational Study (BRAVO) Jenny.
Cloud screening and aerosol retrievals from MAX-DOAS measurements at Ukkel Clio Gielen Michel Van Roozendael, Francois Hendrick, Caroline Fayt, Christian.
20 – 24 October, th Intl. ChArMEx workshop, Trieste, Italy 1/18 Variability of Mediterranean aerosols properties at three regional background sites.
Algorithms and chemical data assimilation activities at Environment Canada Chris McLinden Air Quality Research Division, Environment Canada 2 nd TEMPO.
1 Satellite Remote Sensing of Particulate Matter Air Quality ARSET Applied Remote Sensing Education and Training A project of NASA Applied Sciences Pawan.
Tore Flatlandsmo Berglen EACE workshop June 2007 Air quality, ozone and aerosols in Asia. A model study Tore Flatlandsmo Berglen 1,2, Terje K. Berntsen.
1 β Attenuation Method PM10/2.5 Automated Dichotomous Monitor SPM-613D β Attenuation Method PM10/2.5 Automated Dichotomous Monitor Model SPM-613D ■SPM.
AMFIC third progress meeting MariLiza Koukouli & Dimitris Balis Laboratory of Atmospheric Physics Aristotle University of Thessaloniki.
Urban vs. Rural Atlanta An assessment of : 1)PM2.5 composition and trends 2)The Atlanta Urban Heat Island Effect.
Latest results on the comparison between OMI and ground-based data at two European sites (Rome and Villeneuve d’Ascq) Virginie Buchard, Colette Brogniez,
Operational assimilation of dust optical depth Bruce Ingleby, Yaswant Pradhan and Malcolm Brooks © Crown copyright 08/2013 Met Office and the Met Office.
 Introduction  Surface Albedo  Albedo on different surfaces  Seasonal change in albedo  Aerosol radiative forcing  Spectrometer (measure the surface.
Determination of atmospheric structures, aerosol optical properties and particle type with the R-MAN 510 Raman dual polarization lidar super ceilometer.
US Aerosols : Observation from Space, Climate Interactions Daniel J. Jacob and funding from NASA, EPRI, EPA with Easan E. Drury (now at NREL), Loretta.
AMFIC final meeting LAP/Auth validation activities Dimitris Balis & MariLiza Koukouli Laboratory of Atmospheric Physics Aristotle University of Thessaloniki.
About the status and outlook for OMI Surface UV product OMI Science Team Meeting Helsinki, June 24-27, 2008 Antti Arola.
Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD and first preliminary results of the aerosol campaign. RMI December.
Monitoring aerosols in China with AATSR Anu-Maija Sundström 2 Gerrit de Leeuw 1 Pekka Kolmonen 1, and Larisa Sogacheva 1 AMFIC , Barcelona 1:
The Use of Optical Methods to Study Aerosols in the Paso del Norte Region Rosa M. Fitzgerald, Javier Polanco, Angel Esparza, Richard Medina Physics Department,
Measuring UV aerosol absorption. Why is aerosol UV absorption important ? Change in boundary layer ozone mixing ratios as a result of direct aerosol forcing.
Characterization of Aerosols using Airborne Lidar, MODIS, and GOCART Data during the TRACE-P (2001) Mission Rich Ferrare 1, Ed Browell 1, Syed Ismail 1,
1 NOAA-UPRM COOP Program in Atmospheric Sciences and Meteorology, Department of Physics, University of Puerto Rico at Mayagüez, Mayagüez, PR Yaítza.
Betty Croft, and Randall V. Martin – Dalhousie University, Canada
OVERVIEW OF ATMOSPHERIC PROCESSES: Daniel J. Jacob Ozone and particulate matter (PM) with a global change perspective.
Comparison of OMI NO 2 with Ground-based Direct Sun Measurements at NASA GSFC and JPL Table Mountain during Summer 2007 George H. Mount & Elena Spinei.
Timothy Logan University of North Dakota Department of Atmospheric Science.
Intercomparison of Ground-based Column Ozone Measurements with Aura Satellite Retrievals over Richland, WA during INTEX-B/IONS-06 Wan Ching Jacquie Hui.
CLN QA/QC efforts CCNY – (Barry Gross) UMBC- (Ray Hoff) Hampton U. (Pat McCormick) UPRM- (Hamed Parsiani)
Estimating PM 2.5 from MODIS and MISR AOD Aaron van Donkelaar and Randall Martin March 2009.
AGACC II: WP3: Aerosol properties and radiative forcing at Uccle Veerle De Bock Royal Meteorological Institute of Belgium
Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD and first preliminary results of the aerosol campaign. RMI December.
Evaluation of model simulations with satellite observed NO 2 columns and surface observations & Some new results from OMI N. Blond, LISA/KNMI P. van Velthoven,
Generation of TOA Radiative Fluxes from the GERB Instrument Data. Part II: First Results Nicolas Clerbaux and GERB team Royal Meteorological Institute.
Estimation of the contribution of mineral dust to the total aerosol depth: Particular focus on Atlantic Ocean G. Myhre, A. Grini, T.K. Berntsen, T.F. Berglen,
The Use of Spectral and Angular Information In Remote Sensing
Retrieval of desert dust aerosols vertical profiles from IASI measurements in the TIR atmospheric window Sophie Vandenbussche, Svetlana Kochenova, Ann-Carine.
ESA :DRAGON/ EU :AMFIC Air quality Monitoring and Forecasting In China Ronald van der A, KNMI Bas Mijling, KNMI Hennie Kelder KNMI, TUE DRAGON /AMFIC project.
number Typical aerosol size distribution area volume
Consulting and Technology Technical Excellence | Pragmatic Solutions | Proven Delivery Calibration Test Sites Selection and Characterisation WP 240 Equipment.
BelAtmos Atmospheric Composition Measurements at Princess Elisabeth Station ROYAL METEOROLOGICAL INSTITUTE INSTITUTE of SPACE AERONOMY GHENT UNIVERSITY.
Royal Meteorological Institute of Belgium
Willy Maenhaut1, Wan Wang1, Xuguang Chi1, Nico Raes1, Jan Cafmeyer1,
Hugo De Backer, Roeland Van Malderen
Intercomparison of IWV measurements from radiosonde, sunphotometer, FTIR, and GPS instruments at Uccle K. Clémer1 C. Hermans1, M. De.
Vicarious calibration by liquid cloud target
Royal Meteorological Institute of Belgium
Absolute calibration of sky radiances, colour indices and O4 DSCDs obtained from MAX-DOAS measurements T. Wagner1, S. Beirle1, S. Dörner1, M. Penning de.
Stelios Kazadzis A. Bais, A. Arola OMI science team meeting
DETERMINATION OF PHOTOSYNTHETICALLY ACTIVE RADIATION
2018 STCE Annual Meeting Surface UV radiation.
Using dynamic aerosol optical properties from a chemical transport model (CTM) to retrieve aerosol optical depths from MODIS reflectances over land Fall.
Air Quality Assessment and Management
M. De Graaf1,2, K. Sarna2, J. Brown3, E. Tenner2, M. Schenkels4, and D
Presentation transcript:

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD and first preliminary results of the aerosol measurements campaign. RMI December 6 th Validation of the method to retrieve the Aerosol Optical Depth from the Brewer Ozone measurements First preliminary results of the aerosol measurements campaign at Uccle

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th Validation of the method to retrieve the Aerosol Optical Depth from the Brewer Ozone measurements Anne Cheymol, Hugo De Backer, Weine Josefsson and René Stübi Cheymol et al., jgr, 2006

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th Overview 1. Introduction 2. The Brewer spectrophotometer instrument 3. Description of the method 4. Results  Impact of the neutral density filter on AOD and Validation of the AOD between a Brewer and a sunphotometer  Comparisons between different Brewer at the same place 5. Conclusions and perspectives

Role of aerosol particles Most aerosol particles’s knowledge is in VIS and IR and not in UV Important role in climate forcing  UV-B irradiance reduction by about 5-35%  Indirect effect on clouds Impact on Human health Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th 2006.

Anthropogenic origin Polluted day on January 28 th 2006 Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th Photo by A. Delcloo and A. Mangold smoke Clear day on November 9 th 2006

Natural origin Sea salt ejected from the sea in the air Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th Photo by Plisson

Natural origin Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th Clean roof Photo from the web Pollen

Seasonal cycle of AOD at Uccle Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th 2006.

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th Overview 1. Introduction 2. The Brewer spectrophotometer instrument 3. Description of the method 4. Results  Impact of the neutral density filter on AOD and Validation of the AOD between a Brewer and a sunphotometer  Comparisons between Brewer at the same place 5. Conclusions and perspectives

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th 2006 Over 100 Brewer stations (blue points)

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th nm nm

Validation of the method to retrieve the AOD. RMI December 6 th 2006 Royal Meteorological Institute of Belgium Zenith angle = z a sunset Rotation of the instrument during the day 12H AfternoonMorning

Royal Meteorological Institute of Belgium Summary of the Brewer measurements 5 Direct Sun measurements/3mns every 30mns Automatic rotation during the day to follow the sun No cloud  direct sun measurement 25°  z a  70 ° for one day at Uccle Validation of the method to retrieve the AOD. RMI December 6 th 2006

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th Aerosol Optical Depth = attenuation of solar radiation by aerosol particles Direct Sun radiation at 306, 310, 313, 316 and 320 nm

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th Overview 1. Introduction 2. The Brewer spectrophotometer instrument 3. Description of the method 4. Results  Impact of the neutral density filter on AOD and Validation of the AOD between a Brewer and a sunphotometer  Comparisons between Brewer at the same place 5. Conclusions and perspectives

Attenuation of solar radiation Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th 2006.

Royal Meteorological Institute of Belgium Beer’s law equation S( ) = K( ) I o ( ) exp[ D o3 ( ) + D ray ( ) + D aer (  sec(z a ) ) ] Validation of the method to retrieve the AOD. RMI December 6 th 2006 Aerosol particlesMoleculeOzone Signal received by the Brewer Brewer’s sensitivity to I o ( )

Royal Meteorological Institute of Belgium ln[ S( ) ]-D o3 - D ray = ln[ K( ) I o ( ) ]-  ( ) * sec(z a ) + Y = A * X + B Langley plot method Validation of the method to retrieve the AOD. RMI December 6 th 2006 Y axisX axisSlopeIntercept

Royal Meteorological Institute of Belgium Langley plot method 19/06/05 for 320 nm Y = ln[S( )] - D o3 - D ray A = -  ( ) *X = sec(za) +B = ln[K( )I o ( )] Validation of the method to retrieve the AOD. RMI December 6 th 2006

Selection of clear days for the Langley Plot Method 1.Ozone stdev for individual DS measurements < 2.5 DU  z a per day  20° 3.Number of good data per day  50 4.Distance between each point and the regression line < 4 (Y unit) 5.Daily mean absolute deviation from the regression line < (Y units) Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th 2006

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th Calibration factor Average of these 65 calibration factors with error of about 0.2% 65 Calibration factors at Uccle

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th Summary of the method

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th Overview 1. Introduction 2. The Brewer spectrophotometer instrument 3. Description of the method 4. Results  Impact of the neutral density filter on AOD and Validation of the AOD between a Brewer and a sunphotometer  Comparisons between Brewer at the same place 5. Conclusions and perspectives

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th Where?

Validation of the method to retrieve the AOD. RMI December 6 th 2006 Royal Meteorological Institute of Belgium If solar intensity too high Brewer instrument Filter I1I1 I2I2 If not Brewer instrument I1I1 I 2 < I 1 What is a Brewer’s filter?

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th nm 368 nm sunphotometer Time difference max = 3 min

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th Filters impact on AOD c = 0.87 b = 0.80 ± a = ± c = 0.98 b= 0.85 ± a= 0.02 ± N = 1718 Standard filters N = 1934 Real filters Errors

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th Where?

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th Arosa

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th nm 368 nm Hourly mean AOD compared for 2002 Brewer spectrophotometer Sunphotometer

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th Comparison Arosa/Davos c = 0.62 b = 0.56 ± 0.04 a = 0.02 ± N = 335

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th Overview 1. Introduction 2. The Brewer instrument 3. Description of the method  Physical equation  Langley plot method 4. Results  Impact of the neutral density filter on AOD and Validation of the AOD between a Brewer and a sunphotometer  Comparisons between different Brewer at the same place 5. Conclusions and perspectives

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th Where?

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th Uccle N = 5781 c = 0.98 b= 1.02 ± a= 0.06 ± 0.001

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th Arosa 2004 N = 2771 c = 0.94 b= 0.98 ± a= 0.03 ± 0.002

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th Summary of the comparisons Brewer

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th Overview 1. Introduction 2. The Brewer spectrophotometer instrument 3. Description of the method  Physical equation  Langley plot method 4. Results  Impact of the neutral density filter on AOD and Validation of the AOD between a Brewer and a sunphotometer  Comparisons between Brewer at the same place 5. Conclusions and perspectives

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th Conclusions 1. Important role of the filter values of the Brewer spectrophotometer on the accuracy of AOD 2. High level of confidence of the method used to retrieve the AOD:  correlation coefficient > 0.94  slope ~ 1  Intercept is negligible 3. Validation of the Langley plot method with a comparison between Brewer spectrophotometer and a sunphotometer

Royal Meteorological Institute of Belgium Validation of the method to retrieve the AOD. RMI December 6 th Perspectives 1. Application of the method at different Brewer stations 2. Determination of relation between different aerosol parameters: AOD, ssa, type, size and air mass origin

Royal Meteorological Institute of Belgium Aerosol Measurements Campaign at Uccle. RMI December 6 th First preliminary results of the aerosol measurements campaign at Uccle RMI team: Anne Cheymol, Alexander Mangold, Hugo De Backer, Andy Delcloo, René Lemoine and Roeland Van Malderen Ghent university team: Pr. Willy Maenhaut, Wan Wang, Nico Raes, Xuguang Chi and Jan Cafmeyer Thanks to the weather forecasters of RMI

Royal Meteorological Institute of Belgium Aerosol Measurements Campaign at Uccle. RMI December 6 th Overview 1. Objectives of the campaign 2. The instruments and the first preliminary results 3. Perspectives

Royal Meteorological Institute of Belgium Aerosol Measurements Campaign at Uccle. RMI December 6 th Objectives Aerosol campaign from January 4 th to 30 th November 2006 at Uccle Determination of the relations between AOD, size and type of aerosol particles and air mass origin  Observations in parallel from Brewer spectrophotometer (AOD) and the other aerosol instruments (sampling and monitoring)

Royal Meteorological Institute of Belgium Aerosol Measurements Campaign at Uccle. RMI December 6 th Sampling by Delcloo and Mangold PM10 Mineral Aerosol Organic Aerosol PM2.5 Mineral Aerosol Organic Aerosol

Royal Meteorological Institute of Belgium Aerosol Measurements Campaign at Uccle. RMI December 6 th Sampling Filter by Delcloo and Mangold Inlet PM10 PM2.5

Royal Meteorological Institute of Belgium Aerosol Measurements Campaign at Uccle. RMI December 6 th Ratio PM2.5/PM10

Royal Meteorological Institute of Belgium Aerosol Measurements Campaign at Uccle. RMI December 6 th Coarse particle PM10-PM2.5 Fine particles PM2.5 20% anthropogenic source 61% anthropogenic source

Royal Meteorological Institute of Belgium Aerosol Measurements Campaign at Uccle. RMI December 6 th TEOM inlet

Royal Meteorological Institute of Belgium Aerosol Measurements Campaign at Uccle. RMI December 6 th Mass concentration of PM2.5 01/02 Mean = 15.4 ug/m3 03/01

Royal Meteorological Institute of Belgium Aerosol Measurements Campaign at Uccle. RMI December 6 th February /01 01/02 50 ug/m3

Royal Meteorological Institute of Belgium Aerosol Measurements Campaign at Uccle. RMI December 6 th Photo by A. Delcloo and A. Mangold smoke 28/0109/11 50 ug/m3 20 ug/m3 50 ug/m3

Royal Meteorological Institute of Belgium Aerosol Measurements Campaign at Uccle. RMI December 6 th Aethalometer Mass of Black Carbon

Royal Meteorological Institute of Belgium Aerosol Measurements Campaign at Uccle. RMI December 6 th Perspectives 1 1. Determination of the relation between AOD, mass, size and type of the particles and the air mass origin 2. Aerosol studies is foreseen within the Antarctic project with BIRA and Ghent University

Royal Meteorological Institute of Belgium Aerosol Measurements Campaign at Uccle. RMI December 6 th Most important perspectives snoepjes

Royal Meteorological Institute of Belgium Aerosol Measurements Campaign at Uccle. RMI December 6 th The END

Royal Meteorological Institute of Belgium Antarctic project. RMI December 6 th The antarctic project

Royal Meteorological Institute of Belgium Antarctic project. RMI December 6 th RMI Ozone/UV/aerosol group BIRA M. Van Roozendael, M. De Mazière, C. Hermans, D. Gillotay, C. Depiesse, C. Muller,D. Bolsee Ugent W. Maenhaut and J. Cafmeyer Members of the project